VanDelinder Virginia, Brener Stephanie, Bachand George D
Center for Integrated Nanotechnologies, Sandia National Laboratories , P.O. Box 5800, MS 1303, Albuquerque, New Mexico 87111, United States.
Biomacromolecules. 2016 Mar 14;17(3):1048-56. doi: 10.1021/acs.biomac.5b01684. Epub 2016 Feb 17.
Active self-assembly offers a powerful route for the creation of dynamic multiscale structures that are presently inaccessible with standard microfabrication techniques. One such system uses the translation of microtubule filaments by surface-tethered kinesin to actively assemble nanocomposites with bundle, ring, and spool morphologies. Attempts to observe mechanisms involved in this active assembly system have been hampered by experimental difficulties with performing observation during buffer exchange and photodamage from fluorescent excitation. In the present work, we used a custom microfluidic device to remove these limitations and directly study ring/spool formation, including the earliest events (nucleation) that drive subsequent nanocomposite assembly. Three distinct formation events were observed: pinning, collisions, and induced curvature. Of these three, collisions accounted for the majority of event leading to ring/spool formation, while the rate of pinning was shown to be dependent on the amount of photodamage in the system. We further showed that formation mechanism directly affects the diameter and rotation direction of the resultant rings and spools. Overall, the fundamental understanding described in this work provides a foundation by which the properties of motor-driven, actively assembled nanocomposites may be tailored toward specific applications.
主动自组装为创建动态多尺度结构提供了一条强有力的途径,而这些结构是目前标准微加工技术无法实现的。其中一个系统利用表面 tethered 驱动蛋白对微管丝的平移作用,来主动组装具有束状、环状和线轴状形态的纳米复合材料。由于在缓冲液交换过程中进行观察存在实验困难,以及荧光激发导致的光损伤,观察该主动组装系统所涉及机制的尝试受到了阻碍。在本工作中,我们使用了一种定制的微流控装置来消除这些限制,并直接研究环状/线轴状的形成,包括驱动后续纳米复合材料组装的最早事件(成核)。观察到了三种不同的形成事件:固定、碰撞和诱导曲率。在这三种事件中,碰撞是导致环状/线轴状形成的主要事件,而固定速率显示取决于系统中的光损伤量。我们进一步表明,形成机制直接影响所得环和线轴的直径和旋转方向。总体而言,本工作中所描述的基本理解为定制电机驱动的主动组装纳米复合材料的性能以用于特定应用奠定了基础。